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用于水杨酸检测的稠环修饰罗丹明化学传感器的合理设计:其机理见解及生物学应用

Rational design of fused-ring-modified rhodamine chemosensors for salicylic acid detection: its mechanistic insights and biological application.

作者信息

Ge Mei-Hong, Tang A-Ling, Gao Feng, Tan Shuai, Niu Wei, Zhou Xiang, Yang Song

机构信息

State Key Laboratory of Green Pesticides, Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Center for R&D of Fine Chemicals of Guizhou University, Guiyang, 550025, China.

School of Biological Sciences, Guizhou Education University, Guiyang, 550018, China.

出版信息

Mol Divers. 2025 Jun 27. doi: 10.1007/s11030-025-11261-z.

Abstract

Salicylic acid (SA) functions as a critical phytohormone coordinating developmental regulation and defense responses in plants. Understanding SA's regulatory roles in both homeostasis and stress adaptation necessitates advanced monitoring platforms. We designed six rhodamine probes (R1-R6) containing spirolactam or spirohydrazone bridges to systematically evaluate five-membered spiro structures for SA detection. Furthermore, through Fourier infrared experiments (FTIR) and density functional theory (DFT) calculations, we performed molecular orbital analysis to disclose the SA-responsive mechanism underlying the rhodamine ring-opening process induced by SA. Comparative analysis revealed that spirohydrazone-modified probes displayed enhanced fluorescence performance and improved molecular recognition specificity for SA. The optimized probe R2, incorporating a quinoline moiety, achieved exceptional sensing performance through synergistic hydrogen bonding and C-H…π interactions, demonstrating high selectivity, rapid response kinetics (< 30 s), and excellent sensitivity (LOD = 0.87 μM). Overall, this study successfully visualized endogenous SA distribution in living tomato root systems, establishing a novel design framework for acylhydrazone-based rhodamine sensors and elucidating the SA response mechanism through molecular dynamics simulations.

摘要

水杨酸(SA)作为一种关键的植物激素,在植物中协调发育调控和防御反应。要了解SA在稳态和应激适应中的调节作用,需要先进的监测平台。我们设计了六种含有螺内酰胺或螺腙桥的罗丹明探针(R1-R6),以系统评估用于SA检测的五元螺环结构。此外,通过傅里叶红外实验(FTIR)和密度泛函理论(DFT)计算,我们进行了分子轨道分析,以揭示SA诱导罗丹明开环过程的SA响应机制。对比分析表明,螺腙修饰的探针表现出增强的荧光性能和对SA的改进分子识别特异性。优化后的探针R2含有喹啉部分,通过协同氢键和C-H…π相互作用实现了优异的传感性能,表现出高选择性、快速响应动力学(<30秒)和出色的灵敏度(LOD = 0.87 μM)。总体而言,本研究成功地可视化了活番茄根系中内源性SA的分布,建立了基于酰腙的罗丹明传感器的新颖设计框架,并通过分子动力学模拟阐明了SA响应机制。

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